High-Precision Photometry with a scientific CMOS Camera: I Lab Testing of the Marana camera

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Main Authors: Apergis, Ioannis, Bayliss, Daniel, Asimakoulas, Leonidas, Chote, Paul, McCormac, James, Mitchell, Morgan A., Gill, Sam, Steen, Philip G., Wheatley, Peter
Format: Preprint
Published: 2025
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author Apergis, Ioannis
Bayliss, Daniel
Asimakoulas, Leonidas
Chote, Paul
McCormac, James
Mitchell, Morgan A.
Gill, Sam
Steen, Philip G.
Wheatley, Peter
author_facet Apergis, Ioannis
Bayliss, Daniel
Asimakoulas, Leonidas
Chote, Paul
McCormac, James
Mitchell, Morgan A.
Gill, Sam
Steen, Philip G.
Wheatley, Peter
contents Scientific CMOS cameras are becoming increasingly prevalent in modern observational astronomy. We assess the ability of CMOS image sensors technology to perform high-precision photometry with a detailed laboratory characterization of the Marana 4.2BV-11 CMOS camera. We characterise the camera in the Fastest Frame Rate (FFR) and High Dynamic Range (HDR) modes. Our evaluation includes read noise, dark current, photo response and dark signal non-uniformities, quantum efficiency and window transmittance. The read noise is found to be 1.577\,e$^-$ for the FFR mode. For the HDR mode the read noise floor is measured to be 1.571\,e$^-$ for signal levels below approximately 1800\,e$^-$. The bias level shows dark signal non-uniformities with values of 0.318\,e$^-$ and 0.232\,e$^-$ for FFR and HDR mode, respectively. Pixel well capacity reached 2366 e$^-$pix$^{-1}$ for the FFR mode and 69026 e$^-$pix$^{-1}$ with a dynamic range of 93\,dB for the HDR mode. The camera demonstrates good linearity, yielding linearity errors of 0.099\,\% for FFR mode and 0.122\,\% for HDR mode. The uniformity across the image arrays show a photo response non-uniformity of 0.294\,\% for the FFR mode and 0.131\,\% for the HDR mode. The dark current displays a noticeable glow pattern, resulting in mean dark current levels of $1.674\pm0.011$\, \eps\, for the FFR mode and $1.617\pm0.008$\,\eps\, for the HDR mode at a constant temperature of -25\,$^\circ$C. We measured the quantum efficiency across the visible spectrum, with a peak of of >95\,\% at 560\,nm. Our tests indicate that the Marana CMOS camera is potentially capable of performing precise photometry.
format Preprint
id arxiv_https___arxiv_org_abs_2510_14484
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle High-Precision Photometry with a scientific CMOS Camera: I Lab Testing of the Marana camera
Apergis, Ioannis
Bayliss, Daniel
Asimakoulas, Leonidas
Chote, Paul
McCormac, James
Mitchell, Morgan A.
Gill, Sam
Steen, Philip G.
Wheatley, Peter
Instrumentation and Methods for Astrophysics
Scientific CMOS cameras are becoming increasingly prevalent in modern observational astronomy. We assess the ability of CMOS image sensors technology to perform high-precision photometry with a detailed laboratory characterization of the Marana 4.2BV-11 CMOS camera. We characterise the camera in the Fastest Frame Rate (FFR) and High Dynamic Range (HDR) modes. Our evaluation includes read noise, dark current, photo response and dark signal non-uniformities, quantum efficiency and window transmittance. The read noise is found to be 1.577\,e$^-$ for the FFR mode. For the HDR mode the read noise floor is measured to be 1.571\,e$^-$ for signal levels below approximately 1800\,e$^-$. The bias level shows dark signal non-uniformities with values of 0.318\,e$^-$ and 0.232\,e$^-$ for FFR and HDR mode, respectively. Pixel well capacity reached 2366 e$^-$pix$^{-1}$ for the FFR mode and 69026 e$^-$pix$^{-1}$ with a dynamic range of 93\,dB for the HDR mode. The camera demonstrates good linearity, yielding linearity errors of 0.099\,\% for FFR mode and 0.122\,\% for HDR mode. The uniformity across the image arrays show a photo response non-uniformity of 0.294\,\% for the FFR mode and 0.131\,\% for the HDR mode. The dark current displays a noticeable glow pattern, resulting in mean dark current levels of $1.674\pm0.011$\, \eps\, for the FFR mode and $1.617\pm0.008$\,\eps\, for the HDR mode at a constant temperature of -25\,$^\circ$C. We measured the quantum efficiency across the visible spectrum, with a peak of of >95\,\% at 560\,nm. Our tests indicate that the Marana CMOS camera is potentially capable of performing precise photometry.
title High-Precision Photometry with a scientific CMOS Camera: I Lab Testing of the Marana camera
topic Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2510.14484